Home Effects of trace elements (Fe, Cu, Ni, Co and Mg) on biomethane production from paper mill wastewater
Article
Licensed
Unlicensed Requires Authentication

Effects of trace elements (Fe, Cu, Ni, Co and Mg) on biomethane production from paper mill wastewater

  • Dilan Toprak EMAIL logo , Tülay Yilmaz , Kerem Gülpinar , Amine Yücel , Yakup Çakmak and Deniz Uçar
Published/Copyright: August 29, 2023
Become an author with De Gruyter Brill

Abstract

Trace elements have a significant effect on biochemical reactions and therefore the presence of optimum levels of trace elements is essential for bioreactor performances. In this study, the effects of five trace elements on biomethane production have been investigated. Experimental studies have been carried out with multiple batch reactors at 15 day HRT and mesophilic temperatures. The optimum concentrations for each of the trace elements Fe, Cu, Ni, Co and Mg were found as 5, 0.5, 0.5, 0.5 and 100 mg/L, respectively. Among tested trace elements, Cu was the one which provided the highest biomethane production. Cu addition was resulted in a 46 % increase in biomethane production followed by Co with 24 %. The biomethane production rate for these two trace elements was 191.70 and 110.77 ml CH4/g COD, respectively. Optimum levels for Ni, Fe and Mg increased biomethane production rate by approximately 14.3, 10 and 17 % compared to control groups, respectively. Because the exact amount of trace element requirement for each industry/reactor is different, specific case studies should be performed for each application. These results could be used as initial trace element concentrations for further continuous studies.


Corresponding author: Dilan Toprak, Environmental Engineering Department, Engineering Faculty, Harran University, 63100 Sanliurfa, Türkiye, E-mail:

Funding source: Harran University Scientific Research Fund (HÜBAP/Project no: 18137)

Award Identifier / Grant number: 18137

Acknowledgments

The authors are thankful to Harran University for providing the necessary funds to carry out this research.

  1. Author contributions: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.

  2. Conflict of interest statement: The authors declare that they have no conflicts of interest.

  3. Research funding: This study was funded by the Harran University Scientific Research Fund (HÜBAP/Project no: 18137), Şanlıurfa/Turkey.

  4. Data availability: All data is available upon request.

References

Achtnich, C., Bak, F., and Conrad, R. (1995). Competition for electron donors among nitrate reducers, ferric iron reducers, sulfate reducers, and methanogens in anoxic paddy soil. Biol. Fertil. Soils 19: 65–72, https://doi.org/10.1007/bf00336349.Search in Google Scholar

Agency USEP (2001). Total, fixed, and volatile Solids in water, Solids and biosolids; Method 1684; EPA‐821‐R‐01‐015.Search in Google Scholar

APHA (2005). Standard Methods for the Examination of Water and wastewater; Washington DC, USA.Search in Google Scholar

Ashrafi, O., Yerushalmi, L., and Haghighat, F. (2015). Wastewater treatment in the pulp-and-paper industry: a review of treatment processes and the associated greenhouse gas emission. J. Environ. Manage. 158: 146–157, https://doi.org/10.1016/j.jenvman.2015.05.010.Search in Google Scholar PubMed

Baek, G., Kim, J., and Lee, C. (2019). A review of the effects of iron compounds on methanogenesis in anaerobic environments. Renew. Sustain. Energy Rev. 113: 109282, https://doi.org/10.1016/j.rser.2019.109282.Search in Google Scholar

Banks, C.J., Zhang, Y., Jiang, Y., and Heaven, S. (2012). Trace element requirements for stable food waste digestion at elevated ammonia concentrations. Bioresour. Technol. 104: 127–135, https://doi.org/10.1016/j.biortech.2011.10.068.Search in Google Scholar PubMed

Cai, Y., Hua, B., Gao, L., Hu, Y., Yuan, X., Cui, Z., Zhu, W., and Wang, X. (2017). Effects of adding trace elements on rice straw anaerobic mono-digestion: focus on changes in microbial communities using high-throughput sequencing. Bioresour. Technol. 239: 454–463, https://doi.org/10.1016/j.biortech.2017.04.071.Search in Google Scholar PubMed

Choong, Y.Y., Norli, I., Abdullah, A.Z., and Yhaya, M.F. (2016). Impacts of trace element supplementation on the performance of anaerobic digestion process: a critical review. Bioresour. Technol. 209: 369–379, https://doi.org/10.1016/j.biortech.2016.03.028.Search in Google Scholar PubMed

Cord-Ruwisch, R. (1985). A quick method for the determination of dissolved and precipitated sulfides in cultures of sulfate-reducing bacteria. J. Microbiol. Methods 4: 33–36, https://doi.org/10.1016/0167-7012(85)90005-3.Search in Google Scholar

Deena, S.R., Vickram, A.S., Manikandan, S., Subbaiya, R., Karmegam, N., and Ravindran, B. (2022). Enhanced biogas production from food waste and activated sludge using advanced techniques–a review. Bioresour. Technol. 355: 127234, https://doi.org/10.1016/j.biortech.2022.127234.Search in Google Scholar PubMed

Demirel, B. and Scherer, P. (2011). Trace element requirements of agricultural biogas digesters during biological conversion of renewable biomass to methane. Biomass Bioenergy 35: 992–998, https://doi.org/10.1016/j.biombioe.2010.12.022.Search in Google Scholar

Evranos, B. and Demirel, B. (2015). The impact of Ni, Co and Mo supplementation on methane yield from anaerobic mono-digestion of maize silage. Environ. Technol. 36: 1556–1562, https://doi.org/10.1080/09593330.2014.997297.Search in Google Scholar PubMed

Facchin, V., Cavinato, C., Fatone, F., Pavan, P., Cecchi, F., and Bolzonella, D. (2013). Effect of trace element supplementation on the mesophilic anaerobic digestion of foodwaste in batch trials: the influence of inoculum origin. Biochem. Eng. J. 70: 71–77, https://doi.org/10.1016/j.bej.2012.10.004.Search in Google Scholar

Fairsky, S.C. (2023). Fairsky Industrial Co., Limited. Available at: <https://www.fairskyindustrial.com/>.Search in Google Scholar

Fermoso, F.G., van Hullebusch, E., Collins, G., Roussel, J., Mucha, A.P., and Esposito, G. (2019). Trace elements in anaerobic biotechnologies. IWA Publishing. http://library.oapen.org/handle/20.500.12657/24824.10.2166/9781789060225Search in Google Scholar

Fontanier, V., Albet, J., Baig, S., and Molinier, J. (2005). Simulation of pulp mill wastewater recycling after tertiary treatment. Environ. Technol. 26: 1335–1344, https://doi.org/10.1080/09593332608618610.Search in Google Scholar PubMed

Golub, N.B., Shynkarchuk, A.V., Kozlovets, O.A., and Kozlovets, M.V. (2022). Effects of heavy metal ions (Fe3+, Cu2+, Zn2+ and Cr3+) on the productivity of biogas and biomethane production. Adv. Biosci. Biotechnol. 13: 1–14, https://doi.org/10.4236/abb.2022.131001.Search in Google Scholar

Hao, X., Wei, J., van Loosdrecht, M.C.M., and Cao, D. (2017). Analysing the mechanisms of sludge digestion enhanced by iron. Water Res. 117: 58–67, https://doi.org/10.1016/j.watres.2017.03.048.Search in Google Scholar PubMed

Hijazi, O., Abdelsalam, E., Samer, M., Amer, B., Yacoub, I., and Moselhy, M. (2020). Environmental impacts concerning the addition of trace metals in the process of biogas production from anaerobic digestion of slurry. J. Clean Prod. 243: 118593, https://doi.org/10.1016/j.jclepro.2019.118593.Search in Google Scholar

Huijbregts, M.A.J., Steinmann, Z.J.N., Elshout, P.M.F., Stam, G., Verones, F., and Vieira, M. (2017). ReCiPe2016: a harmonised life cycle impact assessment method at midpoint and endpoint level. Int. J. Life Cycle Assess. 22: 138–147, https://doi.org/10.1007/s11367-016-1246-y.Search in Google Scholar

Jadhav, P., Khalid, Z.B., Krishnan, S., Bhuyar, P., Zularisam, A.W., and Razak, A.S.A. (2022). Application of iron-cobalt-copper (Fe–Co–Cu) trimetallic nanoparticles on anaerobic digestion (AD) for biogas production. Biomass Convers. Biorefinery 12: 1–11, https://doi.org/10.1007/s13399-022-02825-2.Search in Google Scholar

Khatri, S., Kizito Simon, Z.W. (2015). Synergistic effect of alkaline pretreatment and Fe dosing on batch anaerobic digestion of maize straw. Appl. Energy 158: 55–64, https://doi.org/10.1016/j.apenergy.2015.08.045.Search in Google Scholar

Kamali, M., Gameiro, T., Costa, M.E.V., and Capela, I. (2016). Anaerobic digestion of pulp and paper mill wastes–An overview of the developments and improvement opportunities. Chem. Eng. J. 298: 162–182, https://doi.org/10.1016/j.cej.2016.03.119.Search in Google Scholar

Kang, J.-H. and Ahn, J.-H. (2022). Optimization of cobalt, nickel, and iron supplement for mesophilic and thermophilic anaerobic digestion treating high-solid food waste. Environ. Technol. 43: 1–15, https://doi.org/10.1080/09593330.2022.2128890.Search in Google Scholar PubMed

Karlsson, A., Truong, X., Gustavsson, J., Svensson, B.H., Nilsson, F., and Ejlertsson, J. (2011). Anaerobic treatment of activated sludge from Swedish pulp and paper mills–biogas production potential and limitations. Environ. Technol. 32: 1559–1571, https://doi.org/10.1080/09593330.2010.543932.Search in Google Scholar PubMed

Linville, J.L., Shen, Y., Schoene, R.P., Nguyen, M., Urgun-Demirtas, M., and Snyder, S.W. (2016). Impact of trace element additives on anaerobic digestion of sewage sludge with in-situ carbon dioxide sequestration. Process Biochem. 51: 1283–1289, https://doi.org/10.1016/j.procbio.2016.06.003.Search in Google Scholar

Liu, H., Qin, S., Sirohi, R., Ahluwalia, V., Zhou, Y., and Sindhu, R. (2021). Sustainable blueberry waste recycling towards biorefinery strategy and circular bioeconomy: a review. Bioresour. Technol. 332: 125181, https://doi.org/10.1016/j.biortech.2021.125181.Search in Google Scholar PubMed

Liu, Y., Zhang, Y., Quan, X., Li, Y., Zhao, Z., and Meng, X. (2012). Optimization of anaerobic acidogenesis by adding Fe0 powder to enhance anaerobic wastewater treatment. Chem. Eng. J. 192: 179–185, https://doi.org/10.1016/j.cej.2012.03.044.Search in Google Scholar

Luo, T., Ge, Y., Yang, Y., Fu, Y., Kumar Awasthi, M., and Pan, J. (2021). The impact of immersed liquid circulation on anaerobic digestion of rice straw bale and methane generation improvement. Bioresour. Technol. 337: 125368, https://doi.org/10.1016/j.biortech.2021.125368.Search in Google Scholar PubMed

Meng, X., Zhang, Y., Li, Q., and Quan, X. (2013). Adding Fe0 powder to enhance the anaerobic conversion of propionate to acetate. Biochem. Eng. J. 73: 80–85, https://doi.org/10.1016/j.bej.2013.02.004.Search in Google Scholar

Munk, B. and Lebuhn, M. (2014). Process diagnosis using methanogenic Archaea in maize-fed, trace element depleted fermenters. Anaerobe 29: 22–28, https://doi.org/10.1016/j.anaerobe.2014.04.002.Search in Google Scholar PubMed

Myszograj, S., Stadnik, A., and Płuciennik-Koropczuk, E. (2018). The influence of trace elements on anaerobic digestion process. Civ. Environ. Eng. Rep. 28: 105–115, https://doi.org/10.2478/ceer-2018-0054.Search in Google Scholar

Nikolov, T., Bakalova, N., Petrova, S., Benadova, R., Spasov, S., and Kolev, D. (2000). An effective method for bioconversion of delignified waste-cellulose fibers from the paper industry with a cellulase complex. Bioresour. Technol. 71: 1–4, https://doi.org/10.1016/s0960-8524(99)00059-0.Search in Google Scholar

Nordell, E., Nilsson, B., Påledal, S.N., Karisalmi, K., and Moestedt, J. (2016). Co-digestion of manure and industrial waste–The effects of trace element addition. Waste Manag. 47: 21–27, https://doi.org/10.1016/j.wasman.2015.02.032.Search in Google Scholar PubMed

Pokhrel, D. and Viraraghavan, T. (2004). Treatment of pulp and paper mill wastewater – a review. Sci. Total Environ. 333: 37–58, https://doi.org/10.1016/j.scitotenv.2004.05.017.Search in Google Scholar PubMed

Quinlan, R.J., Sweeney, M.D., LeggioLo, L., Otten, H., Poulsen, J.C.N., and Johansen, K.S. (2011). Insights into the oxidative degradation of cellulose by a copper metalloenzyme that exploits biomass components. Proc. Natl. Acad. Sci. 108: 15079–15084, https://doi.org/10.1073/pnas.1105776108.Search in Google Scholar PubMed PubMed Central

Rao, M.S., Singh, S.P., Singh, A.K., and Sodha, M.S. (2000). Bioenergy conversion studies of the organic fraction of MSW: assessment of ultimate bioenergy production potential of municipal garbage. Appl. Energy 66: 75–87, https://doi.org/10.1016/s0306-2619(99)00056-2.Search in Google Scholar

Rempel, S., Colucci, E., de Gier, J.-W., Guskov, A., and Slotboom, D.J. (2018). Cysteine-mediated decyanation of vitamin B12 by the predicted membrane transporter BtuM. Nat. Commun. 9: 1–8, https://doi.org/10.1038/s41467-018-05441-9.Search in Google Scholar PubMed PubMed Central

Resources M of E and N. (2023). Yenilenebilir Enerji Kaynak Alanları Yönetmeliği/Renewable energy resource areas regulation. Available at: https://www.resmigazete.gov.tr/eskiler/2023/05/20230501-7.pdf.Search in Google Scholar

Romero-Güiza, M.S., Vila, J., Mata-Alvarez, J., Chimenos, J., and Astals, S. (2016). The role of additives on anaerobic digestion: a review. Renew. Sustain. Energy Rev. 58: 1486–1499, https://doi.org/10.1016/j.rser.2015.12.094.Search in Google Scholar

Stieb, M. and Schink, B. (1985). Anaerobic oxidation of fatty acids by Clostridium bryantii sp. nov., a sporeforming, obligately syntrophic bacterium. Arch. Microbiol. 140: 387–390, https://doi.org/10.1007/bf00446983.Search in Google Scholar

Suhr, M., Klein, G., Kourti, I., Gonzalo, M.R., Santonja, G.G., Roudier, S., and Sancho, L.D. (2015). Best available techniques (BAT) reference document for the production of pulp, paper and board. Publications Office of the European Union, Luxembourg.Search in Google Scholar

Tian, Y., Zhang, H., Chai, Y., Wang, L., Mi, X., Zhang, L., and Ware, M.A. (2017). Biogas properties and enzymatic analysis during anaerobic fermentation of Phragmites australis straw and cow dung: influence of nickel chloride supplement. Biodegradation 28: 15–25, https://doi.org/10.1007/s10532-016-9774-5.Search in Google Scholar PubMed

Toprak, D., Yilmaz, T., and Uçar, D. (2022). Increasing biomethane production from paper industry wastewater with optimum trace element supplementation. Int. J. Environ. Sci. Technol. 20: 1–14, https://doi.org/10.1007/s13762-022-04156-1.Search in Google Scholar

Uçar, D. (2017). Sequential precipitation of heavy metals using sulfide-laden bioreactor effluent in a pH controlled system. Miner. Process. Extr. Metall. Rev. 38: 162–167, https://doi.org/10.1080/08827508.2017.1281131.Search in Google Scholar

Ucar, D., Bekmezci, O.K., Kaksonen, A.H., and Sahinkaya, E. (2011). Sequential precipitation of Cu and Fe using a three-stage sulfidogenic fluidized-bed reactor system. Miner. Eng. 24: 1100–1105, https://doi.org/10.1016/j.mineng.2011.02.005.Search in Google Scholar

Ucar, D., Cokgor, E.U., and Şahinkaya, E. (2016). Simultaneous nitrate and perchlorate reduction using sulfur-based autotrophic and heterotrophic denitrifying processes. J. Chem. Technol. Biotechnol. 91: 1471–1477, https://doi.org/10.1002/jctb.4744.Search in Google Scholar

Ugwu, S.N., Biscoff, R.K., and Enweremadu, C.C. (2020). A meta-analysis of iron-based additives on enhancements of biogas yields during anaerobic digestion of organic wastes. J. Clean. Prod. 269: 122449, https://doi.org/10.1016/j.jclepro.2020.122449.Search in Google Scholar

Wu, L.-J., Kobayashi, T., Kuramochi, H., Li, Y.Y., and Xu, K.Q. (2016). Effects of potassium, magnesium, zinc, and manganese addition on the anaerobic digestion of de-oiled grease trap waste. Arab. J. Sci. Eng. 41: 2417–2427, https://doi.org/10.1007/s13369-015-1879-3.Search in Google Scholar

Xu, W., Zhao, H., Cao, H., Zhang, Y., Sheng, Y., Li, T., Zhou, S., and Li, H. (2020). New insights of enhanced anaerobic degradation of refractory pollutants in coking wastewater: role of zero-valent iron in metagenomic functions. Bioresour. Technol. 300: 122667, https://doi.org/10.1016/j.biortech.2019.122667.Search in Google Scholar PubMed

Yang, Y., Guo, J., and Hu, Z. (2013). Impact of nano zero valent iron (NZVI) on methanogenic activity and population dynamics in anaerobic digestion. Water Res. 47: 6790–6800, https://doi.org/10.1016/j.watres.2013.09.012.Search in Google Scholar PubMed

Yu, B., Lou, Z., Zhang, D., Shan, A., Yuan, H., Zhu, N., and Zhang, K. (2015). Variations of organic matters and microbial community in thermophilic anaerobic digestion of waste activated sludge with the addition of ferric salts. Bioresour. Technol. 179: 291–298, https://doi.org/10.1016/j.biortech.2014.12.011.Search in Google Scholar PubMed

Zhang, J., Tian, H., Wang, X., and Tong, Y.W. (2020). Effects of activated carbon on mesophilic and thermophilic anaerobic digestion of food waste: process performance and life cycle assessment. Chem. Eng. J. 399: 125757, https://doi.org/10.1016/j.cej.2020.125757.Search in Google Scholar

Zhang, L. and Jahng, D. (2012). Long-term anaerobic digestion of food waste stabilized by trace elements. Waste Manag 32: 1509–1515, https://doi.org/10.1016/j.wasman.2012.03.015.Search in Google Scholar PubMed

Zhang, W., Zhang, L., and Li, A. (2015). Enhanced anaerobic digestion of food waste by trace metal elements supplementation and reduced metals dosage by green chelating agent [S, S]-EDDS via improving metals bioavailability. Water Res. 84: 266–277, https://doi.org/10.1016/j.watres.2015.07.010.Search in Google Scholar PubMed

Received: 2023-02-20
Accepted: 2023-08-07
Published Online: 2023-08-29
Published in Print: 2023-12-15

© 2023 Walter de Gruyter GmbH, Berlin/Boston

Downloaded on 18.11.2025 from https://www.degruyterbrill.com/document/doi/10.1515/npprj-2023-0009/pdf
Scroll to top button